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Diversity

Diversity in data sampling is crucial across various use cases, including search, recommendation systems, and more. Ensuring diverse samples means capturing a wide range of variations and perspectives, which leads to more robust, unbiased, and comprehensive models. In search use cases, for instance, diversity helps avoid redundancy, ensuring that users are exposed to a broader set of relevant information rather than repeated similar results.

Papers

Showing 46264650 of 9051 papers

TitleStatusHype
Active Task Randomization: Learning Robust Skills via Unsupervised Generation of Diverse and Feasible Tasks0
GANStrument: Adversarial Instrument Sound Synthesis with Pitch-invariant Instance Conditioning0
Content-Diverse Comparisons improve IQA0
Discord Questions: A Computational Approach To Diversity Analysis in News CoverageCode0
Active Learning with Tabular Language Models0
Pushing the limits of self-supervised speaker verification using regularized distillation framework0
Synchronization of Diverse Agents via Phase Analysis0
Unsupervised vocal dereverberation with diffusion-based generative models0
Uncertainty Quantification for Atlas-Level Cell Type Transfer0
Few-shot Image Generation with Diffusion ModelsCode0
Using Set Covering to Generate Databases for Holistic SteganalysisCode0
RITA: Boost Driving Simulators with Realistic Interactive Traffic Flow0
A review of TinyML0
SizeGAN: Improving Size Representation in Clothing Catalogs0
SAMO: Speaker Attractor Multi-Center One-Class Learning for Voice Anti-SpoofingCode1
Diversity-based Deep Reinforcement Learning Towards Multidimensional Difficulty for Fighting Game AICode0
Contrastive Learning for Diverse Disentangled Foreground Generation0
Rethinking the transfer learning for FCN based polyp segmentation in colonoscopyCode0
Benchmarking Quality-Diversity Algorithms on Neuroevolution for Reinforcement Learning0
A General Purpose Neural Architecture for Geospatial Systems0
Discussion of Features for Acoustic Anomaly Detection under Industrial Disturbing Noise in an End-of-Line Test of Geared Motors0
CLIP-Sculptor: Zero-Shot Generation of High-Fidelity and Diverse Shapes from Natural Language0
Exploiting Spatial-temporal Correlations for Video Anomaly Detection0
An Information-Theoretic Approach for Estimating Scenario Generalization in Crowd Motion Prediction0
Dataset Factorization for CondensationCode1
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